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1.
Nat Ecol Evol ; 6(3): 297-306, 2022 03.
Article in English | MEDLINE | ID: mdl-35145268

ABSTRACT

The Black Death (1347-1352 CE) is the most renowned pandemic in human history, believed by many to have killed half of Europe's population. However, despite advances in ancient DNA research that conclusively identified the pandemic's causative agent (bacterium Yersinia pestis), our knowledge of the Black Death remains limited, based primarily on qualitative remarks in medieval written sources available for some areas of Western Europe. Here, we remedy this situation by applying a pioneering new approach, 'big data palaeoecology', which, starting from palynological data, evaluates the scale of the Black Death's mortality on a regional scale across Europe. We collected pollen data on landscape change from 261 radiocarbon-dated coring sites (lakes and wetlands) located across 19 modern-day European countries. We used two independent methods of analysis to evaluate whether the changes we see in the landscape at the time of the Black Death agree with the hypothesis that a large portion of the population, upwards of half, died within a few years in the 21 historical regions we studied. While we can confirm that the Black Death had a devastating impact in some regions, we found that it had negligible or no impact in others. These inter-regional differences in the Black Death's mortality across Europe demonstrate the significance of cultural, ecological, economic, societal and climatic factors that mediated the dissemination and impact of the disease. The complex interplay of these factors, along with the historical ecology of plague, should be a focus of future research on historical pandemics.


Subject(s)
Plague , Yersinia pestis , Animals , DNA, Ancient , Europe/epidemiology , Humans , Pandemics/history , Plague/epidemiology , Plague/history , Plague/microbiology , Yersinia pestis/genetics
2.
Oncogene ; 25(29): 4033-42, 2006 Jul 06.
Article in English | MEDLINE | ID: mdl-16474839

ABSTRACT

We report here that glyceraldehyde-3-phosphate dehydrogenase (GAPDH) interacts in vitro and in vivo with the protein SET. This interaction is performed through the acidic domain of SET located at the carboxy terminal region. On analysing the functional relevance of SET-GAPDH interaction, we observed that GAPDH reverses in a dose-dependent manner, the inhibition of cyclin B-cdk1 activity produced by SET. Similarly to SET, GAPDH associates with cyclin B, suggesting that the regulation of cyclin B-cdk1 activity might be mediated not only by the interaction of GAPDH with SET but also with cyclin B. To analyse the putative role of GAPDH on cell cycle progression, HCT116 cells were transfected with a GAPDH expression vector. Results indicate that overexpression of GAPDH does not affect the timing of DNA replication but induces an increase in the number of mitosis, an advancement of the peak of cyclin B-cdk1 activity and an acceleration of cell cycle progression. All these results suggest that GAPDH might be involved in cell cycle regulation by modulating cyclin B-cdk1 activity.


Subject(s)
CDC2 Protein Kinase/metabolism , Cell Cycle , Chromosomal Proteins, Non-Histone/metabolism , Cyclin B/metabolism , Glyceraldehyde-3-Phosphate Dehydrogenases/metabolism , Neoplasm Proteins/metabolism , Transcription Factors/metabolism , Cell Cycle/genetics , Cell Line, Tumor , DNA Replication/genetics , DNA, Neoplasm/biosynthesis , DNA-Binding Proteins , Enzyme Activation , Genetic Vectors , Glyceraldehyde-3-Phosphate Dehydrogenases/genetics , Histone Chaperones , Humans , Protein Binding , Protein Structure, Tertiary/genetics , Transfection
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